Serotonin transporter (SERT) plays an important role in the action and recycling of serotonin in the brain. SERT is a plasma membrane protein that binds serotonin in the extracellular space near a synapse, transports it across the membrane, and releases it to the cytoplasm. It is the target for drugs of abuse such as ecstasy (3.4-methylenedioxymethamphetamine, MDMA) and cocaine, as well as therapeutic drugs such as antidepressants like Prozac and imipramine. It is closely related to other neurotransmitter transporters such as those for dopamine, norepinephrine, GABA and glycine. As part of a wider interest in the structure and function of SERT, it has become apparent that the part of the transporter that faces the cytoplasm undergoes important conformational changes during transport. This intracellular domain consists of the NH2- and COOH-termini of the protein and five intracelluar loops. The current proposal seeks to understand the structure and function of these intracellular elements in three specific aims. The first of these is to scan the intracellular loops by cysteine mutagenesis to determine the boundaries between the loop and transmembrane domains.
The second aim i s to examine the possibility that intracellular loops interact specifically with each other to form the intracellular structure of the transporter.
The third aim i s to test the hypothesis that the translocation pathway for serotonin is formed, in part, by loops as well as transmembrane domains. It is expected that the results of these experiments will shed light on the structure and function of the related dopamine and norepinephrine transporters as well as of other members of the neurotransmitter transporter family.

Agency
National Institute of Health (NIH)
Institute
National Institute on Drug Abuse (NIDA)
Type
Research Program Projects (P01)
Project #
2P01DA012408-07
Application #
6880182
Study Section
Special Emphasis Panel (ZDA1-RXL-E (06))
Project Start
2004-12-01
Project End
2010-12-31
Budget Start
2004-12-01
Budget End
2006-12-31
Support Year
7
Fiscal Year
2005
Total Cost
$179,242
Indirect Cost
Name
Weill Medical College of Cornell University
Department
Type
DUNS #
060217502
City
New York
State
NY
Country
United States
Zip Code
10065
Mayer, Felix P; Schmid, Diethart; Owens, W Anthony et al. (2018) An unsuspected role for organic cation transporter 3 in the actions of amphetamine. Neuropsychopharmacology 43:2408-2417
Quick, Matthias; Abramyan, Ara M; Wiriyasermkul, Pattama et al. (2018) The LeuT-fold neurotransmitter:sodium symporter MhsT has two substrate sites. Proc Natl Acad Sci U S A 115:E7924-E7931
Herborg, Freja; Andreassen, Thorvald F; Berlin, Frida et al. (2018) Neuropsychiatric disease-associated genetic variants of the dopamine transporter display heterogeneous molecular phenotypes. J Biol Chem 293:7250-7262
Razavi, Asghar M; Khelashvili, George; Weinstein, Harel (2018) How structural elements evolving from bacterial to human SLC6 transporters enabled new functional properties. BMC Biol 16:31
Doktorova, Milka; Weinstein, Harel (2018) Accurate In Silico Modeling of Asymmetric Bilayers Based on Biophysical Principles. Biophys J 115:1638-1643
LeVine, Michael V; Cuendet, Michel A; Razavi, Asghar M et al. (2018) Thermodynamic Coupling Function Analysis of Allosteric Mechanisms in the Human Dopamine Transporter. Biophys J 114:10-14
Stolzenberg, Sebastian; Li, Zheng; Quick, Matthias et al. (2017) The role of transmembrane segment 5 (TM5) in Na2 release and the conformational transition of neurotransmitter:sodium symporters toward the inward-open state. J Biol Chem 292:7372-7384
Razavi, Asghar M; Khelashvili, George; Weinstein, Harel (2017) A Markov State-based Quantitative Kinetic Model of Sodium Release from the Dopamine Transporter. Sci Rep 7:40076
Sahai, Michelle A; Davidson, Colin; Khelashvili, George et al. (2017) Combined in vitro and in silico approaches to the assessment of stimulant properties of novel psychoactive substances - The case of the benzofuran 5-MAPB. Prog Neuropsychopharmacol Biol Psychiatry 75:1-9
Gregorio, G Glenn; Masureel, Matthieu; Hilger, Daniel et al. (2017) Single-molecule analysis of ligand efficacy in ?2AR-G-protein activation. Nature 547:68-73

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